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Tracking objects using density matching and shape priors

机译:使用密度匹配和形状前沿跟踪对象

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We present a novel method for tracking objects by combining density matching with shape priors. Density matching is a tracking method which operates by maximizing the Bhattacharyya similarity measure between the photometric distribution from an estimated image region and a model photometric distribution. Such trackers can be expressed as PDE-based curve evolutions, which can be implemented using level sets. Shape priors can be combined with this level-set implementation of density matching by representing the shape priors as a series of level sets; a variational approach allows for a natural, parametrization-independent shape term to be derived. Experimental results on real image sequences are shown.
机译:我们通过将密度匹配与形状前沿的密度匹配呈现一种跟踪物体的新方法。密度匹配是一种跟踪方法,其通过最大化来自估计的图像区域和模型光度分布的光度分布之间的BHATTARCARYA相似度测量来操作。这种跟踪器可以表示为基于PDE的曲线演进,可以使用级别集实现。通过将形状前沿作为一系列级别组表示形状前沿,可以将形状前置与这种级别匹配的实现相结合;变分方法允许衍生自然的参数化的形状术语。显示了实图像序列上的实验结果。

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